Dear Giuseppe,
There are others who are certainly better in answering most of your questions here.
I just want to make a comment to two of your questions:
> -Why do older versions of IQ-Tree yield more heterogeneous results in model selection?
What older versions are you referring to?
I know that between IQ-TREE 1 and 2 there was a change in model selection to speed up model selection in large data sets. Models that cannot be expected to get higher scores than already tested ones, not all rate heterogeneity types are tested anymore.
This behaviour can be overruled by setting “-mrate ALL”.
Maybe that reduced some heterogeneity, although I don’t think so.
Minh and others might know more.
> -Why do recent versions fail to merge identical models, and why are there identical models for different regions
Please note, just because two sets of genes/regions have their same type of model (here TN+F+I+R2), it does not mean that their estimated parameterizations are substantially different.
Different codon positions or genes could substantially different GC contents or the relative rates in the substitution matrix can be distributed very differently. And in a +R2 the relativ rates of the two site categories could also vary strongly in the difference and size.
Hence, two TN+F+I+R2 models can actually be quite different, and then they should not be joined.
I hope that helps at least for one of your questions.
Best wishes,
Heiko Schmidt
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Heiko Schmidt
Center for Integrative Bioinformatics Vienna (CIBIV)
University of Vienna / Max Perutz Labs
http://www.cibiv.at/
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